Modeling of Solid Particle Erosion for a Water–Sand Impingement System Using OpenFOAM

Author:

Narváez Mateo12ORCID,Cruzatty Cristian12,Valencia Esteban12,Hidalgo Víctor1234ORCID,Luo Xianwu5,Torres Alejandra1,Erazo José12,Altamirano Gonzalo6,Cando Edgar127ORCID

Affiliation:

1. Departamento de Ingeniería Mecánica, Escuela Politécnica Nacional, Quito 170517, Ecuador

2. Grupo de Investigación de Aeronáutica y Termofluidos Aplicada, Escuela Politécnica Nacional, Quito 170517, Ecuador

3. Carrera de Pedagogía Técnica de la Mecatrónica, Facultad de Filosofía, Letras y Ciencias de la Educación, Universidad Central del Ecuador, Quito 170129, Ecuador

4. Centro de Investigación en Mecatrónica y Sistemas Interactivos—MIST, Universidad Indoamérica, Av. Machala y Sabanilla, Quito 170103, Ecuador

5. Department of Energy and Power Engineering, Tsinghua University, Beijing 100084, China

6. Centro de Investigación y Recuperación de Turbinas Hidráulicas y Partes Industriales, CELEC EP, Baños de Agua Santa 180254, Ecuador

7. Escuela de Ingeniería Mecatrónica, Universidad Internacional del Ecuador, Quito 170411, Ecuador

Abstract

The development of accurate methodologies for a thorough comprehension of the erosion phenomenon is a challenging and necessary task. This study entailed an exhaustive analysis, incorporating empirical data obtained from an experiment involving the impingement of a sand and water jet on a submerged stainless-steel plate and numerical simulations, employing the Oka Erosion model that was compilated in OpenFOAM. The primary focus of this study was to generate W-shaped profiles delineating the impingement zone, derived both from experimental observations and the developed numerical model. This comparative approach facilitated a robust evaluation of the model’s efficacy in replicating erosion patterns. The outcomes of this analysis revealed a concurrence between the experimental and simulated erosion contours, affirming the model’s proficiency in representing erosion phenomena. Nevertheless, a minor discrepancy was noted, characterized by a slight underestimation of erosion rate and thickness loss. Furthermore, the investigation unveiled a noteworthy time-dependent trend in mass loss from the experimental data denoting a pseudo stabilization of the erosion rate across the time. This research contributes to the refinement of erosion modeling parameters and underscores the nature of time-dependent erosion behavior, a pivotal consideration for optimizing material durability.

Funder

Corporación Ecuatoriana para el Desarrollo de la Investigación y la Academia

Publisher

MDPI AG

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces

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